This application claims the priority benefit of Taiwan application serial no. 107127781, filed on Aug. 9, 2018. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to a diffuser and a loudspeaker, particularly, a diffuser and a loudspeaker used for sound diffusion.
The speaker monomers are mainly designed to produce sound from the front side. Nevertheless, transmission of sound with higher frequencies (e.g., frequencies greater than 8 KHz) usually decreases as deviation from the axis direction of the front side of the speaker monomer. Sound produced by the speaker monomer is thereby distorted, and clarity of the sound is also reduced. In order to overcome the foregoing problems, multiple speaker monomers may be disposed on multiple sides, or sound directions of the speaker monomers may be arranged to be vertically (relative to the ground) disposed. Nevertheless, high manufacturing costs are required if multiple speaker monomers are to be disposed, and overall volume of the multiple speaker monomers are great, and sound performance of sound with higher frequencies may still not be effectively improved in the case of the sound directions of the speaker monomers are vertically disposed.
The information disclosed in this “Description of Related Art” section is only for enhancement of understanding of the content of the disclosure and therefore it may contain information that does not form the related art that is already known to people having ordinary skills in the art. Further, the information disclosed in the “Description of Related Art” section does not mean that one or more problems to be resolved by one or more embodiments of the disclosure was acknowledged by people having ordinary skill in the art.
The disclosure provides a diffuser configured to provide a sound diffusion effect of a tweeter speaker.
The disclosure further provides a loudspeaker featuring a favorable sound effect.
A diffuser in an embodiment of the disclosure includes a cone body including an apex portion, a bottom portion, and a side edge portion. The apex portion forms a partial spherical surface, and the bottom portion and the apex portion are located at two opposite sides of the cone body. The side edge portion is aspherical and is connected between the apex portion and the bottom portion. The apex portion satisfies: 2R/3≥r≥R, where r is a radius of curvature of the apex portion, and R is a radius of curvature of a spherical diaphragm of a tweeter speaker.
In an embodiment of the disclosure, in the diffuser, a central axis is defined by connecting an apex of the apex portion to a center of curvature of the apex portion, and the central axis extends and passes through a geometric center of the bottom portion.
In an embodiment of the disclosure, in the diffuser, a distance between an apex of the apex portion and the bottom portion is 20 mm to 40 mm.
In an embodiment of the disclosure, in the diffuser, a first connection line is defined by connecting a connection point between the apex portion and the side edge portion to a center of curvature of the apex portion, and a second connection line is defined by connecting the apex of the apex portion to the center of curvature of the apex portion. An included angle θ between the first connection line and the second connection line satisfies: 30°≥θ≥45°.
In an embodiment of the disclosure, in the diffuser, a slope of the side edge portion with respect to the bottom portion decreases away from the apex portion.
In an embodiment of the disclosure, the diffuser further includes at least one support pillar inserted on the side edge portion, and the at least one support pillar protrudes and extends from the side edge portion away from the bottom portion.
In an embodiment of the disclosure, in the diffuser, the at least one support pillar has a first through hole, and the cone body has a second through hole. The first through hole is connected to the second through hole.
A loudspeaker provided by an embodiment of the disclosure includes a tweeter speaker and a diffuser. The tweeter speaker has a spherical diaphragm, and a radius of curvature of the spherical diaphragm is R. The diffuser is disposed above the tweeter speaker and is separated from the tweeter speaker. The diffuser includes an apex portion, a bottom portion, and a side edge portion. The apex portion faces towards the tweeter speaker, and the apex portion forms a partial spherical surface. A radius of curvature of the apex portion is r, and 2R/3≥r≥R. The bottom portion is separated from the apex portion by a distance. The side edge portion is aspherical and is connected between the apex portion and the bottom portion.
In an embodiment of the disclosure, in the loudspeaker, a central axis is defined by connecting an apex of the apex portion to a center of curvature of the apex portion. The central axis extends and passes through a zenith of the spherical diaphragm of the tweeter speaker.
In an embodiment of the disclosure, in the loudspeaker, a distance between an apex of the diffuser and a zenith of the spherical diaphragm is less than or equal to 5 mm and greater than or equal to 0.5 mm.
In an embodiment of the disclosure, in the loudspeaker, a vertical distance between the bottom portion of the cone body and a zenith of the spherical diaphragm of the tweeter speaker is 20.5 mm to 45 mm.
In an embodiment of the disclosure, in the loudspeaker, a first connection line is defined by connecting a connection point between the apex portion and the side edge portion to a center of curvature of the apex portion, and a second connection line is defined by connecting the apex of the apex portion to the center of curvature of the apex portion. An included angle θ between the first connection line and the second connection line satisfies: 30°≥θ≥45°.
In an embodiment of the disclosure, in the loudspeaker, a slope of the side edge portion of the diffuser with respect to the bottom portion of the diffuser decreases away from the apex portion.
In an embodiment of the disclosure, in the loudspeaker, the diffuser further includes at least one support pillar inserted on the side edge portion, and the at least one support pillar protrudes and extends from the side edge portion away from the bottom portion.
In an embodiment of the disclosure, in the loudspeaker, the at least one support pillar has a first through hole, and the cone body has a second through hole. The first through hole is connected to the second through hole.
In an embodiment of the disclosure, the loudspeaker further includes a carrier, the tweeter speaker is installed on the carrier, and the carrier exposes the spherical diaphragm of the tweeter speaker.
In an embodiment of the disclosure, in the loudspeaker, a cross-sectional width of the carrier is 4 times to 5 times greater than a cross-sectional width of the spherical diaphragm of the tweeter speaker.
In an embodiment of the disclosure, in the loudspeaker, a surface of the carrier is an arc surface.
In an embodiment of the disclosure, in the loudspeaker, the surface of the carrier is further away from a tangential plane of a zenith of the spherical diaphragm when being further away from the spherical diaphragm of the tweeter speaker.
In an embodiment of the disclosure, in the loudspeaker, the side edge portion forms an arc-shaped profile between the bottom portion and the apex portion. A radius of curvature of the arc-shaped profile is 65% of a cross-sectional width of the bottom portion.
To make the aforementioned more comprehensible, several embodiments accompanied with drawings are described in detail as follows.
The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
In the diffuser 100 featuring the foregoing characteristics, a frequency response of sound waves with a higher frequency may be properly increased, as such, a response curve is relatively flat, and favorable sound quality is thereby achieved. The response curve is a curve presenting a sound producing effect of the loudspeaker with frequency (unit: Hz) as the horizontal axis and sound pressure (unit: dB) as the vertical axis. As regards the response curve, the loudspeaker is generally placed at a height of approximately 1 meter to 1.5 meters above the ground. A microphone is placed 1 meter away from the loudspeaker and is placed at a position as high as the loudspeaker. A result obtained by measuring sound produced by the loudspeaker in an anechoic chamber is the response curve. In general, the response curve may reflect accuracy of a reproduced sound frequency of the loudspeaker, and a flatter response curve may more faithfully reflect the sound frequency to be produced.
In the cone body 110 of the diffuser 100, the side edge portion 113 may be designed to be an aspherical structure, and the apex portion 111 may be designed to be a spherical structure. A connection point 1112 between the apex portion 111 and the side edge portion 113 may be regarded as a border defining the spherical structure and the aspherical structure. In addition, the bottom portion 112 is substantially a portion having a greatest cross-sectional area in the cone body 110, and a border between the bottom portion 112 and the side edge portion 113 may be defined by a plane A. The bottom portion 112 depicted in
The cone body 110 of the diffuser 100 may be designed to be a rotation symmetric structure. A central axis M defined by connecting an apex 1111 of the apex portion 111 to a center of curvature O of the apex portion 111 is a symmetric axis of the cone body 110. Further, the central axis M also extends and passes through a geometric center G of the bottom portion 112, as such, the cone body 110 is shaped as a rotation symmetric structure with respect to the central axis M. Through the rotation symmetric design, the diffuser 100 of this embodiment may achieve an evenly-dispersed sound diffusion effect in different directions. That is, the sound diffusion effect provided by the diffuser 100 is all-directional and is not limited to a specific direction.
In some embodiments, a distance H between the apex 1111 of the apex portion 111 and the bottom portion 112 may be, for example, 200 mm (millimeter) to 40 mm. Herein, the distance H between the apex 1111 of the apex portion 111 and the bottom portion 112 refers to a vertical distance between the apex 1111 and the plane A where the bottom portion 112 and the side edge portion 113 are connected. A diffusion effect of sound waves with a high frequency (e.g., greater than 8 KHz) may be increased by increasing the distance H. Nevertheless, volume of the diffuser 100 may also increase along with an increase in distance H, so that a compact volume design is not achieved. Hence, a designer may decide a structure and a size of the cone body 110 according to different needs and considerations.
From
The diffuser 100 of this embodiment is approximately identical to the diffuser 100 described in the embodiment of
To be specific, the loudspeaker 10 of this embodiment includes the diffuser 100 featuring a rotation symmetric structure. A symmetric axis of the diffuser 100 is a central axis M, and the central axis M is defined by, for example, connecting the apex 1111 of the apex portion 111 and the center of curvature O of the apex portion 111. The central axis M further extends and passes through a zenith 2101 of the spherical diaphragm 210 of the tweeter speaker 200, as such, the diffuser 100 is substantially aligned with the spherical diaphragm 210 of the tweeter speaker 200. In addition, a distance d between the apex 1111 of the diffuser 100 and the zenith 2101 of the spherical diaphragm 210 is less than or equal to 5 mm, and in this way, the diffuser 100 may provide a favorable sound diffusion effect. Further, the distance d is greater than or equal to 0.5 mm, in this way, vibration of the spherical diaphragm 210 is not affected in the operation process as the spherical diaphragm 210 of the tweeter speaker 200 is not in contact with the diffuser 100. Herein, the distance d between the apex 1111 of the diffuser 100 and the zenith 2101 of the spherical diaphragm 210 refers to a vertical distance between the apex 1111 and a tangential plane B of the zenith 2101 of the spherical diaphragm 210.
Specifically, a vertical distance D between the bottom portion 112 (or the highest point of the side edge portion 113) of the diffuser 100 and the zenith 2101 of the spherical diaphragm 210 of the tweeter speaker 200 is 20.5 mm (millimeter) to 45 mm. The vertical distance D between the bottom portion 112 and the zenith 2101 of the spherical diaphragm 210 of the tweeter speaker 200 is exemplified as a vertical distance between the plane A where the bottom portion 112 and the side edge portion 113 are connected and the zenith 2101 of the spherical diaphragm 210 in this embodiment. Response of high-frequency (e.g., greater than 8 KHz) sound waves may be increased by increasing the distance D. For instance, when the distance D increases, decrease of amplitude of high frequency sound waves in the response curve reduces. The volume of the diffuser 100 may increase when the distance D increases, so that the designer may determine the distance D corresponding to different needs. That is, a structure and a size of the diffuser 100 as well as the distance d between the diffuser 100 and the tweeter speaker 200 may be adjusted according to needs.
In some embodiments, in the diffuser 100, a first connection line L1 is defined by connecting a connection point 1112 between the apex portion 111 and the side edge portion 113 to the center of curvature O of the apex portion 111, and a second connection line L2 is defined by connecting the apex 1111 of the apex portion 111 to the center of curvature O of the apex portion 111. The diffuser 100 may be designed in a way that an included angle θ between the first connection line L1 and the second connection line L2 satisfies: 30°≥θ≥45°. In a periphery of the connection point 1112, the slope of the side edge portion 113 with respect to the bottom portion 112 may be approximately 30° to 45°. Moreover, the slope of the side edge portion 113 of the diffuser 100 with respect to the bottom portion 112 of the diffuser 100 may decrease away from the apex portion 111. Nevertheless, along with different design needs, the slope of the side edge portion 113 with respect to the bottom portion 112 may selectively increase, maintain to be equal, or change segment by segment away from the apex portion 111.
Furthermore, the carrier 300 may be further disposed in the loudspeaker 10 of this embodiment, and the tweeter speaker 200 is installed on the carrier 300, and the carrier 300 exposes the spherical diaphragm 210 of the tweeter speaker 200. In some embodiments, a cross-sectional width of the carrier 300 is L, and a cross-sectional width of the spherical diaphragm 210 of the tweeter speaker 200 is W, and the cross-sectional width L may approximately be 4 times to 5 times greater than the cross-sectional width W, and a width of the diffuser 100 may be identical to or similar to a width of the carrier 300. For instance, a cross-sectional width of the bottom portion 112 of the cone body 110 of the diffuser 100 may also be 4 times to 5 times greater than the cross-sectional width W of the spherical diaphragm 210. In addition, a surface of the carrier 300 may be flat, but is not limited thereto.
From
In view of the foregoing, the diffuser provided by the disclosure is formed at least by the cone body, and the cone body includes the apex portion, the bottom portion, and the side edge portion. The apex portion forms a partial spherical surface and satisfies: 2R/3≥r≥R, where r is the radius of curvature of the apex portion, and R is the radius of curvature of the spherical diaphragm of the tweeter speaker matched with the diffuser. With the diffuser, the frequency response of the wave band of higher frequencies may be properly increased, the response curve is relatively flat, and the response curves obtained in different directions can be more identical. Therefore, favorable sound quality is achieved, sound distortion is reduced, and sound transmission over a large area can be achieved with reduced costs and volume.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure covers modifications and variations provided that they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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107127781 A | Aug 2018 | TW | national |
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Number | Date | Country |
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201608889 | Oct 2010 | CN |
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Entry |
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“Search Report of Europe Counterpart Application”, dated Jul. 16, 2019, p. 1-p. 9. |
“Office Action of Japan Counterpart Application”, dated Mar. 24, 2020, with (partial) English translation thereof, p. 1-p. 4. |
Number | Date | Country | |
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20200053454 A1 | Feb 2020 | US |